Chaste Release::3.1
NhsContractionModel.cpp
00001 /*
00002 
00003 Copyright (c) 2005-2012, University of Oxford.
00004 All rights reserved.
00005 
00006 University of Oxford means the Chancellor, Masters and Scholars of the
00007 University of Oxford, having an administrative office at Wellington
00008 Square, Oxford OX1 2JD, UK.
00009 
00010 This file is part of Chaste.
00011 
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00022 
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00034 */
00035 #include "NhsContractionModel.hpp"
00036 #include "OdeSystemInformation.hpp"
00037 #include "EulerIvpOdeSolver.hpp"
00038 #include "UblasCustomFunctions.hpp"
00039 
00040 #include <cmath>
00041 
00042 
00043 
00044 //
00045 // Model-scope constant parameters
00046 //
00047 const double NhsContractionModel::mKon = 100;
00048 const double NhsContractionModel::mKrefoff = 0.2;
00049 const double NhsContractionModel::mGamma = 2;
00050 const double NhsContractionModel::mCalciumTroponinMax = 0.07;
00051 const double NhsContractionModel::mAlphaR1 = 0.002;
00052 const double NhsContractionModel::mAlphaR2 = 0.0017;
00053 const double NhsContractionModel::mKZ = 0.15;
00054 const unsigned NhsContractionModel::mNr = 3u;
00055 const double NhsContractionModel::mBeta1 = -4;
00056 const double NhsContractionModel::mAlpha0 = 0.008;
00057 const unsigned NhsContractionModel::mN = 3u;
00058 const double NhsContractionModel::mZp = 0.85;
00059 const double NhsContractionModel::mCalcium50ref = 0.00105;
00060 const double NhsContractionModel::mTref = 56.2;
00061 const double NhsContractionModel::mBeta0 = 4.9;
00062 const double NhsContractionModel::mA = 0.35;
00063 const double NhsContractionModel::mA1 = -29;
00064 const double NhsContractionModel::mA2 = 138;
00065 const double NhsContractionModel::mA3 = 129;
00066 const double NhsContractionModel::mAlpha1 = 0.03;
00067 const double NhsContractionModel::mAlpha2 = 0.130;
00068 const double NhsContractionModel::mAlpha3 = 0.625;
00069 
00070 
00071 /*
00072  * ============================== PRIVATE FUNCTIONS =====================================
00073  */
00074 void NhsContractionModel::CalculateCalciumTrop50()
00075 {
00076     double Ca50ref_times_one_plus_beta1_times_lam_minus_one = mCalcium50ref * (1 + mBeta1*(mLambda-1));
00077     double one_plus_beta0_times_lam_minus_one_over_two_gamma = (1 + mBeta0*(mLambda-1))/(2*mGamma);
00078 
00079     mCalciumTrop50 = mCalciumTroponinMax * Ca50ref_times_one_plus_beta1_times_lam_minus_one;
00080     mCalciumTrop50 /= (Ca50ref_times_one_plus_beta1_times_lam_minus_one + (1-one_plus_beta0_times_lam_minus_one_over_two_gamma)*mKrefoff/mKon);
00081 }
00082 
00083 
00084 double NhsContractionModel::CalculateT0(double z)
00085 {
00086     double calcium_ratio_to_n = SmallPow(mCalciumTrop50/mCalciumTroponinMax, mN);
00087 
00088     double z_max = mAlpha0 - mK2*calcium_ratio_to_n;
00089     z_max /= mAlpha0 + (mAlphaR1 + mK1)*calcium_ratio_to_n;
00090 
00091     return z * mTref * (1+mBeta0*(mLambda-1)) / z_max;
00092 }
00093 
00094 
00095 
00096 /*
00097  * ============================== PUBLIC FUNCTIONS =====================================
00098  */
00099 
00100 NhsContractionModel::NhsContractionModel()
00101     :   AbstractOdeBasedContractionModel(5) // five state variables
00102 {
00103     mpSystemInfo = OdeSystemInformation<NhsContractionModel>::Instance();
00104     ResetToInitialConditions();
00105 
00106     mLambda = 1.0;
00107     mDLambdaDt = 0.0;
00108     mCalciumI = 0.0;
00109 
00110     // Initialise mCalciumTrop50!!
00111     CalculateCalciumTrop50();
00112 
00113     double zp_to_n_plus_K_to_n = SmallPow(mZp,mNr) + SmallPow(mKZ,mNr);
00114 
00115     mK1 = mAlphaR2 * SmallPow(mZp,mNr-1) * mNr * SmallPow(mKZ,mNr);
00116     mK1 /= zp_to_n_plus_K_to_n * zp_to_n_plus_K_to_n;
00117 
00118     mK2 = mAlphaR2 * SmallPow(mZp,mNr)/zp_to_n_plus_K_to_n;
00119     mK2 *= 1 - mNr*SmallPow(mKZ,mNr)/zp_to_n_plus_K_to_n;
00120 }
00121 
00122 void NhsContractionModel::SetStretchAndStretchRate(double lambda, double dlambdaDt)
00123 {
00124     assert(lambda>0.0);
00125     mLambda = lambda;
00126     mDLambdaDt = dlambdaDt;
00127     // lambda changed so update mCalciumTrop50!!
00128     CalculateCalciumTrop50();
00129 }
00130 
00131 void NhsContractionModel::SetInputParameters(ContractionModelInputParameters& rInputParameters)
00132 {
00133     assert(rInputParameters.intracellularCalciumConcentration != DOUBLE_UNSET);
00134     assert(rInputParameters.intracellularCalciumConcentration > 0.0);
00135     mCalciumI = rInputParameters.intracellularCalciumConcentration;
00136 }
00137 
00138 void NhsContractionModel::SetIntracellularCalciumConcentration(double calciumConcentration)
00139 {
00140     assert(calciumConcentration > 0.0);
00141     mCalciumI = calciumConcentration;
00142 }
00143 
00144 double NhsContractionModel::GetCalciumTroponinValue()
00145 {
00146     return mStateVariables[0];
00147 }
00148 
00149 void NhsContractionModel::EvaluateYDerivatives(double time,
00150                                                const std::vector<double> &rY,
00151                                                std::vector<double> &rDY)
00152 {
00154 
00155     const double& calcium_troponin = rY[0];
00156     const double& z = rY[1];
00157     const double& Q1 = rY[2];
00158     const double& Q2 = rY[3];
00159     const double& Q3 = rY[4];
00160 
00161     // check the state vars are in the expected range
00162     #define COVERAGE_IGNORE
00163     if(calcium_troponin < 0)
00164     {
00165         EXCEPTION("CalciumTrop concentration went negative");
00166     }
00167     if(z<0)
00168     {
00169         EXCEPTION("z went negative");
00170     }
00171     if(z>1)
00172     {
00173         EXCEPTION("z became greater than 1");
00174     }
00175     #undef COVERAGE_IGNORE
00176 
00177 
00178     double Q = Q1 + Q2 + Q3;
00179     double T0 = CalculateT0(z);
00180 
00181     double Ta;
00182     if(Q>0)
00183     {
00184         Ta = T0*(1+(2+mA)*Q)/(1+Q);
00185     }
00186     else
00187     {
00188         Ta = T0*(1+mA*Q)/(1-Q);
00189     }
00190 
00191     rDY[0] =   mKon * mCalciumI * ( mCalciumTroponinMax - calcium_troponin)
00192              - mKrefoff * (1-Ta/(mGamma*mTref)) * calcium_troponin;
00193 
00194     double ca_trop_to_ca_trop50_ratio_to_n = SmallPow(calcium_troponin/mCalciumTrop50, mN);
00195 
00196     rDY[1] =   mAlpha0 * ca_trop_to_ca_trop50_ratio_to_n * (1-z)
00197              - mAlphaR1 * z
00198              - mAlphaR2 * SmallPow(z,mNr) / (SmallPow(z,mNr) + SmallPow(mKZ,mNr));
00199 
00200 
00201     rDY[2] = mA1 * mDLambdaDt - mAlpha1 * Q1;
00202     rDY[3] = mA2 * mDLambdaDt - mAlpha2 * Q2;
00203     rDY[4] = mA3 * mDLambdaDt - mAlpha3 * Q3;
00204 }
00205 
00206 
00207 double NhsContractionModel::GetActiveTension()
00208 {
00209     double T0 = CalculateT0(mStateVariables[1]);
00210     double Q = mStateVariables[2]+mStateVariables[3]+mStateVariables[4];
00211 
00212     if(Q>0)
00213     {
00214         return T0*(1+(2+mA)*Q)/(1+Q);
00215     }
00216     else
00217     {
00218         return T0*(1+mA*Q)/(1-Q);
00219     }
00220 }
00221 
00222 template<>
00223 void OdeSystemInformation<NhsContractionModel>::Initialise(void)
00224 {
00225     this->mVariableNames.push_back("CalciumTroponin");
00226     this->mVariableUnits.push_back("microMols");
00227     this->mInitialConditions.push_back(0);
00228 
00229     this->mVariableNames.push_back("z");
00230     this->mVariableUnits.push_back("");
00231     this->mInitialConditions.push_back(0);
00232 
00233     this->mVariableNames.push_back("Q1");
00234     this->mVariableUnits.push_back("");
00235     this->mInitialConditions.push_back(0);
00236 
00237     this->mVariableNames.push_back("Q2");
00238     this->mVariableUnits.push_back("");
00239     this->mInitialConditions.push_back(0);
00240 
00241     this->mVariableNames.push_back("Q3");
00242     this->mVariableUnits.push_back("");
00243     this->mInitialConditions.push_back(0);
00244 
00245     this->mInitialised = true;
00246 }